Integrin-identity shapes and mechanotemporally encodes the fibroblast transcriptome
Sharma, U.;Nava, M.;Witte, L.;Luginbuehl, N.;Ji, H.;Okoniewski, M.;Kottke, R.;Treutlein, B.;Faessler, R.;Mueller, D.
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Fibroblast transcriptomic states reflect physiological and pathological tissue contexts, yet the upstream determinants that stabilize these states remain poorly defined. Integrins mediate extracellular matrix (ECM) adhesion and biochemical signaling, but whether they encode mechanical constraints into stable transcriptomic programs is unclear. Using engineered mouse fibroblasts, bulk and single-cell transcriptomics, and controlled micromechanical confinement, we show that integrins can shape the transcriptomic landscape. The bulk transcriptome of fibroblasts expressing V- and {beta}1-class indicates a shared mechanosensitive baseline, except when these integrin classes are expressed individually. We also found integrin-specific gene clusters, including {beta}1-class integrin-dependent enrichment of Areg, Epha7, Lhpp and Igf2r, which regulate development, regeneration and disease, and altered YAP1 targeted gene expression. At single-cell resolution under confinement, {beta}1-class integrins sustain a progenitor-associated program, whereas their loss or V-class enrichment promotes a constitutively activated state linked to injury repair and wound healing. Mechanical confinement and confinement duration further reshapes these states in an integrin-identity-dependent manner. Our findings establish integrin-identity as a determinant of how fibroblasts transduce mechanotemporal inputs from the cell surface to the nucleus.
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